EP1709479A4 - Method for making micro-lens array - Google Patents

Method for making micro-lens array

Info

Publication number
EP1709479A4
EP1709479A4 EP04814003A EP04814003A EP1709479A4 EP 1709479 A4 EP1709479 A4 EP 1709479A4 EP 04814003 A EP04814003 A EP 04814003A EP 04814003 A EP04814003 A EP 04814003A EP 1709479 A4 EP1709479 A4 EP 1709479A4
Authority
EP
European Patent Office
Prior art keywords
optically transparent
sheet
transparent member
segments
heating
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP04814003A
Other languages
German (de)
French (fr)
Other versions
EP1709479A2 (en
Inventor
Yin S Tang
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of EP1709479A2 publication Critical patent/EP1709479A2/en
Publication of EP1709479A4 publication Critical patent/EP1709479A4/en
Withdrawn legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/10Beam splitting or combining systems
    • G02B27/1073Beam splitting or combining systems characterized by manufacturing or alignment methods
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/24Coupling light guides
    • G02B6/255Splicing of light guides, e.g. by fusion or bonding
    • G02B6/2552Splicing of light guides, e.g. by fusion or bonding reshaping or reforming of light guides for coupling using thermal heating, e.g. tapering, forming of a lens on light guide ends
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C67/00Shaping techniques not covered by groups B29C39/00 - B29C65/00, B29C70/00 or B29C73/00
    • B29C67/0044Shaping techniques not covered by groups B29C39/00 - B29C65/00, B29C70/00 or B29C73/00 for shaping edges or extremities
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29DPRODUCING PARTICULAR ARTICLES FROM PLASTICS OR FROM SUBSTANCES IN A PLASTIC STATE
    • B29D11/00Producing optical elements, e.g. lenses or prisms
    • B29D11/00663Production of light guides
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B37/00Manufacture or treatment of flakes, fibres, or filaments from softened glass, minerals, or slags
    • C03B37/01Manufacture of glass fibres or filaments
    • C03B37/02Manufacture of glass fibres or filaments by drawing or extruding, e.g. direct drawing of molten glass from nozzles; Cooling fins therefor
    • C03B37/025Manufacture of glass fibres or filaments by drawing or extruding, e.g. direct drawing of molten glass from nozzles; Cooling fins therefor from reheated softened tubes, rods, fibres or filaments, e.g. drawing fibres from preforms
    • C03B37/028Drawing fibre bundles, e.g. for making fibre bundles of multifibres, image fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29LINDEXING SCHEME ASSOCIATED WITH SUBCLASS B29C, RELATING TO PARTICULAR ARTICLES
    • B29L2011/00Optical elements, e.g. lenses, prisms
    • B29L2011/0075Light guides, optical cables

Definitions

  • TECHNICAL FIELD This invention relates to light controlling structures, and more particularly to a method of making a microlens array for imaging systems, optical scanning systems, photo copying machines and the like.
  • Microlens arrays provide optical versatility in a miniature package for imaging applications.
  • a microlens is defined as a lens with a diameter less than one millimeter; however, a lens having a diameter as large as five millimeters has sometimes also been considered a microlens.
  • One commonly used technique for manufacturing microlenses begins by coating a substrate with a selected photoresist, exposing the photoresist coated substrate to radiation through a mask, or alternatively, subjecting the photoresist to gray scale laser exposure. Upon heating the substrate, the exposed photoresist melts and surface tension pulls the material in the form of convex lenses. The depth of the photoresist determines the focal length of the lens.
  • microlenses made using the ion exchange method are used to collimate light from fibers as, for example, in telecommunications. Users of microlenses are moving away from discrete microlenses towards microlens arrays.
  • One manufacturing process for the production of glass microlens arrays generally involves reactive ion etching (RIE) of fused silica.
  • Compression molding of optical quality glass to form microlens arrays is also well known.
  • This method includes compressing optical element preforms, generally known as gobs, at high temperatures to form a glass lens element.
  • gobs optical element preforms
  • This method includes compressing optical element preforms, generally known as gobs, at high temperatures to form a glass lens element.
  • gobs optical element preforms
  • the gob is generally placed on the lower mold and heated above the glass transition temperature and near the glass softening point.
  • the upper mold is then brought in contact with the gob and pressure is applied to conform the gob to the shape of the mold cavity.
  • Microlens arrays are generally formed on the top surfaces of silicon chips, either light-sensitive (e.g., CCDs) or light-emitting (e.g., micro-display devices).
  • a planarization layer is first formed over the silicon substrate.
  • a color filter layer is next formed over the planarization layer with sub-pixel areas properly aligned with active devices in the silicon substrate.
  • Another planarization layer is generally formed over the color filter layer and, finally a photoresist material is deposited over the second planarization layer.
  • Conventional lithographic techniques are then utilized to form rectangular patterns in the photoresist.
  • a development step removes the photoresist in the exposed areas leaving the central island regions over the pixel-active areas transparent. Development and sometimes etching, removes the photoresist material between these central regions and forms trenches in the photoresist area separating the islands of photoresist now defining the individual microlens sites.
  • a deep plasma etch into the silicon substrate next removes all layers above the substrate.
  • the present invention provides a method for manufacturing a light controlling structure, generally referred to as a microlens or microlens array for imaging systems, optical scanning systems, photo copying machines and the like.
  • a method is provided for manufacturing a microlens array. The method includes adhering or binding together a bundle of optically transparent members, such as rods or fibers. The bundle of optically transparent members is cut to form sheets of member segments.
  • the cross-section or faces of the sheet can resemble a honeycomb-like structure.
  • the faces are polished to smooth out any rough edges created by the cutting process.
  • one or both faces or ends of the sheets can be modified to shape the ends into a desired shape.
  • the modified ends are exposed to an energy source, such as a heat source, electrical spike, laser light and the like, which causes the end of each member segment to form a lens segment.
  • the microlens array manufactured by the method of the present invention can be made small or large.
  • the size of the microlens array can be made from less than about 10 ⁇ m square to greater than a 70 in. x 70 in. wall display unit.
  • each lens element is made with a high degree of lens size uniformity.
  • the lens element arrangement in array can be fixed according to different applications.
  • the scope of the invention is defined by the claims, which are incorporated into this section by reference.
  • FIG. 1 is a flowchart illustrating the method of the present invention in accordance with one embodiment thereof;
  • FIG.2 is a simplified illustration of a bundle of optically transparent members in accordance with an embodiment of the present invention;
  • FIG. 3 A is a simplified representation of a cut sheet of optically transparent member segments taken across the bundle of FIG. 2 in accordance with an embodiment of the present invention;
  • FIG. 3B is a side view of a single optically transparent member segment in accordance with an embodiment of the present invention;
  • FIG. 4A is a simplified side view illustration of an array of optically transparent member segments subjected to a heating treatment in accordance with an embodiment of the present invention;
  • FIG. 4B is a simplified side view illustration of an array of optically transparent member segments subjected to a heating treatment in accordance with an embodiment of the present invention
  • FIG. 5 is a simplified illustration of a light beam shape converter and light interpreter used in a projection system including microlens arrays in accordance with an embodiment of the present invention
  • FIGS. 6A, 6B, 6C and 6D are simplified side views of various configurations of microlens arrays in accordance with the present invention
  • FIGS. 7 A and 7B are simplified side view illustrations of a bundle of optically transparent members in accordance with an embodiment of the present invention
  • FIGS. 8 A and 8B show simplified illustrations of standard cut optically transparent member segments undergoing an etch process in accordance with an embodiment of the present invention
  • FIG. 9 is a simplified illustration of an optically transparent member segment undergoing a heat treatment in accordance with an embodiment of the present invention.
  • Embodiments of the present invention and their advantages are best understood by referring to the detailed description that follows. It should be appreciated that like reference numerals are used to identify like elements illustrated in one or more of the figures.
  • FIG. 1 is a flowchart illustrating the method 100 of the present invention. The method includes providing a bundle of optically transparent members, such as optically transparent rods or fibers made of glass, plastic and the like (si 02). The bundle of optically transparent members is cut or sliced into a sheet or sheets of optically transparent member segments (si 04), where each sheet has a first face and second face.
  • each sheet can be made to any desired thickness.
  • the ends of each optically transparent member segment in each sheet can be polished so as to create a smooth end.
  • Method 100 may also include modifying one or both faces of the sheets (si 06) to form the face of the sheet into a surface that varies from a flat surface to a more rounded surface.
  • the end of each transparent member segment can be modified (si 07) so as to create variable sized and shaped lens structures during the lens element formation process.
  • one or both faces of each sheet of optically transparent member segments are subjected to an energy source that can provide a heating treatment, which causes a lens element to form on the end or ends of the optically transparent member segments (si 08).
  • FIG. 2 is a simplified illustration of a bundle 200 of a plurality of optically transparent members 202 in accordance with an embodiment of the present invention.
  • each optically transparent member 202 can be a rod, cylinder, fiber or other similarly shaped member that can provide a pathway for light.
  • the plurality of optically transparent members 202 is bound together (si 02) along a longitudinal axis of each member.
  • the resulting structure has a cross-section which resembles a honeycomb-like structure.
  • optically transparent members 202 can be bound together to form bundle 200 using any suitable adhesive, such as a UN curable adhesive and the like.
  • any suitable adhesive such as a UN curable adhesive and the like.
  • any gaps that may exist between the members are filled with the adhesive before the adhesive is cured.
  • bundle 200 can be formed during a drawing/polling process.
  • Optically transparent members 202 can be made of a variety of materials.
  • optically transparent members 202 are made of glass (SiO 2 ), plastic, polymer wires and other similar optically transparent materials. The diameter and length of each optically transparent member 202 that make up bundle 200 are generally dictated by the application.
  • the thickness of bundle 200 (i.e. the length of members 202) is made greater than or at least equal to a desired thickness of the microlens array required by the application.
  • bundle 200 can be cut (si 04) into a single layer or sheet 300 to form an array of optically transparent member segments 302 having a thickness t.
  • the length of optically transparent members 202 should be greater than or equal to t.
  • each sheet 300 of optically transparent member segments 302 can be about 100 ⁇ m, where for an image projection system using a light integrator the thickness may approach several millimeters.
  • the diameter of each optically transparent member 202 in bundle 200 can be standard single mode fiber, which has a core size of 9 ⁇ m and an overall diameter of about 125 ⁇ m. In general, the diameter of each optically transparent member 202 can range from between about less than 1 and about several millimeters depending on the application.
  • FIGS. 7 A and 7B are simplified side view illustrations of yet another embodiment of bundle 700a.
  • bundle 700a can be made to include optically transparent members having individually varying diameters.
  • bundle 700a is shown having optically transparent members 702a having a diameter di and optically transparent members 702b having a diameter d 2 , where d 2 is greater than di.
  • optically transparent members 702a are disposed on the peripheral area Ai of bundle 700a and optically transparent members 702b are disposed in a core area A 2 of bundle 700a.
  • the beam intensity of a light input 704 directed into a microlens array formed from bundle 700a in accordance with the principles of the present invention can be expected to be redistributed as shown in intensity curve 706.
  • FIG. 7B shows bundle 700b having optically transparent members 702c having a diameter cU and optically transparent members 702d having a diameter d , where d 3 is greater than d 4 .
  • optically transparent members 702d are disposed on the peripheral area A 3 of bundle 700b and optically transparent members 702c are disposed in a core area A 4 of bundle 700b.
  • the beam intensity of a light input 708 directed into a microlens array formed from bundle 700b in accordance with the principles of the present invention can be expected to be redistributed as shown in intensity curve 710.
  • bundle 200 can be cut into a sheet 300 using conventional cutting technologies, such as dicing saws and cutting wheels.
  • faces 304 and 306 may be modified.
  • the ends or faces 304 and 306 of cut sheet 300 can be polished or otherwise "cleaned” to form a smooth flat surface on one or both ends of sheet 300.
  • the polishing can be used to modify the curvature, size, and related parameters of each face 304 and 306 of sheet 300 can be optimized to form a desired microlens array surface on one or both faces of the sheet.
  • the shape of the array surface is determined by the application.
  • FIG. 6D is a simplified illustration which shows an embodiment of a microlens array surface 608 with lenses formed in a curved manner on one face.
  • the curvature of sheet face 304 of the array 608 can be controlled during the polishing process.
  • the polishing arm can be allowed to swing while rotating sheet 300 forming a curved surface of member segments 302 on face 304.
  • each optically transparent member segment 302 can also be adjusted or modified to create the curvature, size, and parameters of each optically transparent member segment 302 (si 07).
  • the modifications can be accomplished using various techniques including polishing, etching, acid etching and the like.
  • each end 304 and 306 can be modified into various shapes by etching the peripheral area of each member segment 302.
  • FIG. 8A shows a fiber segment 302 etched, such that the core area Ai is raised above the peripheral area A 2 to form etched member segment 802 that can result in a more highly curved lens element 804 when heat is applied thereto as described below.
  • FIG. 8A shows a fiber segment 302 etched, such that the core area Ai is raised above the peripheral area A 2 to form etched member segment 802 that can result in a more highly curved lens element 804 when heat is applied thereto as described below.
  • FIG. 8A shows a fiber segment 302 etched, such that the core area Ai is raised above the peripheral area A 2 to form etched
  • the etching of member segment 302 is increased to form a substantially pointed area in the core area Ai and steeper slopes in peripheral area A 2 of etched member segment 806 that can result in an even more highly curved lens element 808 when heat is applied thereto as described below.
  • the etching process described above can be accomplished by placing ends 304 and 306 into an HF acid bath for a specific duration of time. The acid bath affects the peripheral area A before it affects the core area Ai, thus the longer the optically transparent member 302 is held in the HF acid bath, the more severe is the etch (i.e. the steeper the slope of the etched area).
  • optically transparent member segments with etched ends form lenses with shorter focal lengths and can improve light focusing.
  • surfaces 308 and/or 310 of the array of optically transparent member segments 302, whether etched or not, are subjected to an energy source, which causes heating (si 08) to form lens elements 406, which together form microlens array 400.
  • the heat treatment causes the peripheral area Pi of each member segment 302 to soften or melt faster than the core area Ci.
  • the surface tension created by the unequal melting affect causes curved surfaces to form at the ends of the member segment producing lens elements 904 and 906.
  • the heat treatment can be carried out using any suitable heat generation means including equivalents of the embodiment described below.
  • the array of optically transparent member segments 302 can be placed into a furnace 402.
  • Furnace 402 is capable of obtaining a heating level which allows for the heat treatment to be accomplished for any given optically transparent member segment material.
  • the heat treatment cause the formation of lens elements 904 on first ends 304 and alternatively, lens elements 906 on second ends 306, if desired.
  • the heat treatment can be accomplished by scanning surfaces 308 and/or 310 with a high powered laser 404 using a wavelength that can be absorbed by the optically transparent member segment material to heat the material and form lens elements 904 and/or 906.
  • the energy source which provides heating can be an electrical spark/arc or a glow discharge placed near the ends of optically transparent member segments.
  • FIG. 3B is a side view of single optically transparent member segment 302 in accordance with an embodiment of the present invention.
  • first end 304 of optically transparent member segment 302 can be modified by the heating process to have different radii of curvature in two mutually perpendicular or other different directions.
  • the particular illustration in FIG. 3B shows a curved surface 308 on first end 304, such as an oval, semi-oval, piano/convex asphere and the like shaped lens surface, which can provide different optical performance in different optical axes relative to the major axis of the lens surface.
  • second end 306 can also be modified to either be made flat or to have different radii of curvature in two mutually perpendicular or other different directions.
  • FIG. 3B shows a curved surface 310 on second end 306, such as an oval or semi-oval shaped lens surface, which can provide different optical performance in different optical axes relative to the major axis of the lens surface.
  • the pitch and size of the microlens array can also be adjusted based on the requirements of the particular application. Manufacturing specifications and tolerances for microlens arrays are governed by the specific application and defined by the end user accordingly. In one example, using the method of the present invention a microlens array can be made with focal length uniformity of less than 5% across the entire array, using standard single mode fiber having a diameter of about 125 ⁇ m.
  • FIG. 5 illustrates an example of an application for microlens arrays made using the method of the present invention.
  • the example includes a projection system 500 which can include multiple microlens arrays of variable sizes and shapes designed for a specific application.
  • light enters projection system 500 at a first end 502 having a first microlens array 504 with a first shape 506, for example, a round shape.
  • the light exits projection system 500 at a second end 508 through a second microlens array 510 with a second shape 512, for example, a rectangle.
  • the shapes and sizes of the microlens arrays can be made as desired for any application in accordance with the method of the present invention.
  • lens elements 406 in microlens array 400 can be coated (si 10).
  • microlens array 400 can be coated with anti-reflection and/or anti-glare coatings.
  • the coatings applied to microlens array 400 can be applied by well known techniques, such as sputtering, deposition, evaporation, spraying, dipping, spinning, rolling and the like.
  • thickness t for the microlens array can vary as can the size and shape of the lens surfaces and the number of lens sides depending on the application.
  • FIG. 6A is a simplified illustration which shows an embodiment of a microlens array 602 having lenses formed on both sides.
  • the thickness t of microlens array 602 can be made small, for example, between about 100 ⁇ m and about 1 millimeter.
  • FIG. 6B is a simplified illustration which shows an embodiment of a microlens array 604 having lenses formed on both sides; however, the thickness t is considered large, for example, greater than 1 millimeter. It should be understood from these embodiments, that the thickness t can be made as desired.
  • FIG. 6C is a simplified illustration which shows an embodiment of a microlens array 606 having lenses formed on one side only in accordance with an embodiment of the present invention.
  • the principle embodiment of the present invention described above is described for use with optically transparent members of a cylindrical shape arranged in a bundle. However, it should be understood by those of ordinary skill in the art that the principles of the present invention can apply to other similar shaped materials.
  • Embodiments described above illustrate but do not limit the invention. It should also be understood that numerous modifications and variations are possible in accordance with the principles of the present invention. Accordingly, the scope of the invention is defined only by the following claims.

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Manufacturing & Machinery (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Plasma & Fusion (AREA)
  • Health & Medical Sciences (AREA)
  • Ophthalmology & Optometry (AREA)
  • Chemical & Material Sciences (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Materials Engineering (AREA)
  • Organic Chemistry (AREA)
  • Overhead Projectors And Projection Screens (AREA)
  • Cathode-Ray Tubes And Fluorescent Screens For Display (AREA)
  • Cold Cathode And The Manufacture (AREA)
  • Optical Couplings Of Light Guides (AREA)
  • Mechanical Light Control Or Optical Switches (AREA)
  • Optical Fibers, Optical Fiber Cores, And Optical Fiber Bundles (AREA)
  • Manufacture Of Electron Tubes, Discharge Lamp Vessels, Lead-In Wires, And The Like (AREA)

Abstract

A method for manufacturing a light controlling structure, generally referred to as a microlens or microlens array. The method including providing a bundle of optically transparent members; cutting the bundle of optically transparent members to form at least one sheet of optically transparent member segments; and heating the at least one end of the at least one sheet of optically transparent member segments to form lens surfaces thereon.

Description

METHOD FOR MAKING MICRO-LENS ARRAY
TECHNICAL FIELD This invention relates to light controlling structures, and more particularly to a method of making a microlens array for imaging systems, optical scanning systems, photo copying machines and the like.
BACKGROUND Microlens arrays provide optical versatility in a miniature package for imaging applications. Traditionally, a microlens is defined as a lens with a diameter less than one millimeter; however, a lens having a diameter as large as five millimeters has sometimes also been considered a microlens. One commonly used technique for manufacturing microlenses begins by coating a substrate with a selected photoresist, exposing the photoresist coated substrate to radiation through a mask, or alternatively, subjecting the photoresist to gray scale laser exposure. Upon heating the substrate, the exposed photoresist melts and surface tension pulls the material in the form of convex lenses. The depth of the photoresist determines the focal length of the lens. Another method for the manufacture of microlenses is to use ion exchange. In this method, ions are diffused into a glass rod to give a radial refractive index distribution. The index of refraction is highest in the center of the lens and decreases quadratically as a function of radial distance from the central axis. Microlenses made using the ion exchange method are used to collimate light from fibers as, for example, in telecommunications. Users of microlenses are moving away from discrete microlenses towards microlens arrays. One manufacturing process for the production of glass microlens arrays generally involves reactive ion etching (RIE) of fused silica. In general, it is very difficult to meet all the requirements of microlens arrays using RIE. The RIE technology involves many steps before the final product can be produced and thus the yield is typically poor and the products are costly. Compression molding of optical quality glass to form microlens arrays is also well known. This method includes compressing optical element preforms, generally known as gobs, at high temperatures to form a glass lens element. In the compression molding process, a gob is inserted into a mold cavity. The mold resides within an oxygen-free chamber during the molding process. The gob is generally placed on the lower mold and heated above the glass transition temperature and near the glass softening point. The upper mold is then brought in contact with the gob and pressure is applied to conform the gob to the shape of the mold cavity. After cooling, the lens is removed from the mold. Unfortunately, compression molding an array of microlenses using one or more preforms is subject to many difficulties which include alignment of mechanical and optical axes of each lens element with respect to a common axis, and location of each lens element with respect to a reference point in the array. Furthermore, it is extremely difficult to machine convex aspheric mold cavities using conventional techniques if the microlens diameter is less than 1 mm. Microlens arrays are generally formed on the top surfaces of silicon chips, either light-sensitive (e.g., CCDs) or light-emitting (e.g., micro-display devices). A planarization layer is first formed over the silicon substrate. A color filter layer is next formed over the planarization layer with sub-pixel areas properly aligned with active devices in the silicon substrate. Another planarization layer is generally formed over the color filter layer and, finally a photoresist material is deposited over the second planarization layer. Conventional lithographic techniques are then utilized to form rectangular patterns in the photoresist. After exposure, a development step removes the photoresist in the exposed areas leaving the central island regions over the pixel-active areas transparent. Development and sometimes etching, removes the photoresist material between these central regions and forms trenches in the photoresist area separating the islands of photoresist now defining the individual microlens sites. A deep plasma etch into the silicon substrate next removes all layers above the substrate. Photoresist is then stripped and the devices are hard-baked to reflow the micro lenses into the proper optical form by controlling time and temperature. Consequently, there is a need for an improved method of forming microlens arrays which may not involve the conventional techniques, but a novel process using bundles of optically transparent materials. SUMMARY The present invention provides a method for manufacturing a light controlling structure, generally referred to as a microlens or microlens array for imaging systems, optical scanning systems, photo copying machines and the like. In one aspect of the invention, a method is provided for manufacturing a microlens array. The method includes adhering or binding together a bundle of optically transparent members, such as rods or fibers. The bundle of optically transparent members is cut to form sheets of member segments. The cross-section or faces of the sheet can resemble a honeycomb-like structure. The faces are polished to smooth out any rough edges created by the cutting process. If desired, one or both faces or ends of the sheets can be modified to shape the ends into a desired shape. The modified ends are exposed to an energy source, such as a heat source, electrical spike, laser light and the like, which causes the end of each member segment to form a lens segment. Advantageously, the microlens array manufactured by the method of the present invention can be made small or large. For example, the size of the microlens array can be made from less than about 10 μm square to greater than a 70 in. x 70 in. wall display unit. Unlike other microlens array manufacturing methods, each lens element is made with a high degree of lens size uniformity. As described in further detail below, the lens element arrangement in array can be fixed according to different applications. The scope of the invention is defined by the claims, which are incorporated into this section by reference. A more complete understanding of embodiments of the present invention will be afforded to those skilled in the art, as well as a realization of additional advantages thereof, by a consideration of the following detailed description of one or more embodiments. Reference will be made to the appended sheets of drawings that will first be described briefly.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a flowchart illustrating the method of the present invention in accordance with one embodiment thereof; FIG.2 is a simplified illustration of a bundle of optically transparent members in accordance with an embodiment of the present invention; FIG. 3 A is a simplified representation of a cut sheet of optically transparent member segments taken across the bundle of FIG. 2 in accordance with an embodiment of the present invention; FIG. 3B is a side view of a single optically transparent member segment in accordance with an embodiment of the present invention; FIG. 4A is a simplified side view illustration of an array of optically transparent member segments subjected to a heating treatment in accordance with an embodiment of the present invention; FIG. 4B is a simplified side view illustration of an array of optically transparent member segments subjected to a heating treatment in accordance with an embodiment of the present invention; FIG. 5 is a simplified illustration of a light beam shape converter and light interpreter used in a projection system including microlens arrays in accordance with an embodiment of the present invention; FIGS. 6A, 6B, 6C and 6D are simplified side views of various configurations of microlens arrays in accordance with the present invention; FIGS. 7 A and 7B are simplified side view illustrations of a bundle of optically transparent members in accordance with an embodiment of the present invention; FIGS. 8 A and 8B show simplified illustrations of standard cut optically transparent member segments undergoing an etch process in accordance with an embodiment of the present invention; and FIG. 9 is a simplified illustration of an optically transparent member segment undergoing a heat treatment in accordance with an embodiment of the present invention. Embodiments of the present invention and their advantages are best understood by referring to the detailed description that follows. It should be appreciated that like reference numerals are used to identify like elements illustrated in one or more of the figures. DETAILED DESCRIPTION FIG. 1 is a flowchart illustrating the method 100 of the present invention. The method includes providing a bundle of optically transparent members, such as optically transparent rods or fibers made of glass, plastic and the like (si 02). The bundle of optically transparent members is cut or sliced into a sheet or sheets of optically transparent member segments (si 04), where each sheet has a first face and second face. The thickness of each sheet can be made to any desired thickness. The ends of each optically transparent member segment in each sheet can be polished so as to create a smooth end. Method 100 may also include modifying one or both faces of the sheets (si 06) to form the face of the sheet into a surface that varies from a flat surface to a more rounded surface. Optionally, the end of each transparent member segment can be modified (si 07) so as to create variable sized and shaped lens structures during the lens element formation process. As described in greater detail below, one or both faces of each sheet of optically transparent member segments are subjected to an energy source that can provide a heating treatment, which causes a lens element to form on the end or ends of the optically transparent member segments (si 08). In addition, the newly formed array of lens elements can be coated (si 10), if desired, using a thin film. The coating can include an antireflection or antiglare material for display screen applications. FIG. 2 is a simplified illustration of a bundle 200 of a plurality of optically transparent members 202 in accordance with an embodiment of the present invention. In one embodiment, each optically transparent member 202 can be a rod, cylinder, fiber or other similarly shaped member that can provide a pathway for light. The plurality of optically transparent members 202 is bound together (si 02) along a longitudinal axis of each member. The resulting structure has a cross-section which resembles a honeycomb-like structure. In one embodiment, optically transparent members 202 can be bound together to form bundle 200 using any suitable adhesive, such as a UN curable adhesive and the like. Beneficially, when using a UN curable adhesive, to form bundle 200 of optically transparent members 202, any gaps that may exist between the members are filled with the adhesive before the adhesive is cured. Alternatively, bundle 200 can be formed during a drawing/polling process. Optically transparent members 202 can be made of a variety of materials. For example, in one embodiment, optically transparent members 202 are made of glass (SiO2), plastic, polymer wires and other similar optically transparent materials. The diameter and length of each optically transparent member 202 that make up bundle 200 are generally dictated by the application. In one embodiment, for example, when manufacturing the microlens array, the thickness of bundle 200 (i.e. the length of members 202) is made greater than or at least equal to a desired thickness of the microlens array required by the application. For example, as shown in FIG. 3 A, to ensure the proper thickness, bundle 200 can be cut (si 04) into a single layer or sheet 300 to form an array of optically transparent member segments 302 having a thickness t. Accordingly, the length of optically transparent members 202 should be greater than or equal to t. In one embodiment, for example, when providing a microlens array for an imaging system, such as a camera, the thickness of each sheet 300 of optically transparent member segments 302 can be about 100 μm, where for an image projection system using a light integrator the thickness may approach several millimeters. In one embodiment, the diameter of each optically transparent member 202 in bundle 200 can be standard single mode fiber, which has a core size of 9 μm and an overall diameter of about 125 μm. In general, the diameter of each optically transparent member 202 can range from between about less than 1 and about several millimeters depending on the application. FIGS. 7 A and 7B are simplified side view illustrations of yet another embodiment of bundle 700a. In this embodiment, bundle 700a can be made to include optically transparent members having individually varying diameters. For example, in FIG. 7A bundle 700a is shown having optically transparent members 702a having a diameter di and optically transparent members 702b having a diameter d2, where d2 is greater than di. In this embodiment, optically transparent members 702a are disposed on the peripheral area Ai of bundle 700a and optically transparent members 702b are disposed in a core area A2 of bundle 700a. In this example, the beam intensity of a light input 704 directed into a microlens array formed from bundle 700a in accordance with the principles of the present invention can be expected to be redistributed as shown in intensity curve 706. Redistribution of the light intensity is useful in systems, such as image projection systems, cameras and the like. FIG. 7B shows bundle 700b having optically transparent members 702c having a diameter cU and optically transparent members 702d having a diameter d , where d3 is greater than d4. In this embodiment, optically transparent members 702d are disposed on the peripheral area A3 of bundle 700b and optically transparent members 702c are disposed in a core area A4 of bundle 700b. In this example, the beam intensity of a light input 708 directed into a microlens array formed from bundle 700b in accordance with the principles of the present invention can be expected to be redistributed as shown in intensity curve 710. Pre-bundled optically transparent members 202 of FIG. 2 designed to desired specifications to suit specific applications are commercially available, for example, from Corning, Inc. of New York. Referring again to FIG. 3 A, bundle 200 can be cut into a sheet 300 using conventional cutting technologies, such as dicing saws and cutting wheels. As shown in FIGS. 3 A and 3B, once sheet 300 of optically transparent member segments 302 is cut to a desired thickness t, faces 304 and 306 may be modified. In one embodiment, the ends or faces 304 and 306 of cut sheet 300 can be polished or otherwise "cleaned" to form a smooth flat surface on one or both ends of sheet 300. In another embodiment, the polishing can be used to modify the curvature, size, and related parameters of each face 304 and 306 of sheet 300 can be optimized to form a desired microlens array surface on one or both faces of the sheet. The shape of the array surface is determined by the application. For example, FIG. 6D is a simplified illustration which shows an embodiment of a microlens array surface 608 with lenses formed in a curved manner on one face. In one embodiment, the curvature of sheet face 304 of the array 608 can be controlled during the polishing process. For example, the polishing arm can be allowed to swing while rotating sheet 300 forming a curved surface of member segments 302 on face 304. The individual shape of the ends 304 and 306 of each optically transparent member segment 302 can also be adjusted or modified to create the curvature, size, and parameters of each optically transparent member segment 302 (si 07). The modifications can be accomplished using various techniques including polishing, etching, acid etching and the like. In one embodiment, for example, each end 304 and 306 can be modified into various shapes by etching the peripheral area of each member segment 302. For example, FIG. 8A shows a fiber segment 302 etched, such that the core area Ai is raised above the peripheral area A2 to form etched member segment 802 that can result in a more highly curved lens element 804 when heat is applied thereto as described below. In another embodiment, shown in FIG. 8B, the etching of member segment 302 is increased to form a substantially pointed area in the core area Ai and steeper slopes in peripheral area A2 of etched member segment 806 that can result in an even more highly curved lens element 808 when heat is applied thereto as described below. In one embodiment, the etching process described above can be accomplished by placing ends 304 and 306 into an HF acid bath for a specific duration of time. The acid bath affects the peripheral area A before it affects the core area Ai, thus the longer the optically transparent member 302 is held in the HF acid bath, the more severe is the etch (i.e. the steeper the slope of the etched area). Beneficially, optically transparent member segments with etched ends form lenses with shorter focal lengths and can improve light focusing. As shown in FIG. 4 A, surfaces 308 and/or 310 of the array of optically transparent member segments 302, whether etched or not, are subjected to an energy source, which causes heating (si 08) to form lens elements 406, which together form microlens array 400. As illustrated in FIG. 9, the heat treatment causes the peripheral area Pi of each member segment 302 to soften or melt faster than the core area Ci. The surface tension created by the unequal melting affect, causes curved surfaces to form at the ends of the member segment producing lens elements 904 and 906. The heat treatment can be carried out using any suitable heat generation means including equivalents of the embodiment described below. Referring again to FIG. 4 A, in one embodiment, the array of optically transparent member segments 302 can be placed into a furnace 402. Furnace 402 is capable of obtaining a heating level which allows for the heat treatment to be accomplished for any given optically transparent member segment material. The heat treatment cause the formation of lens elements 904 on first ends 304 and alternatively, lens elements 906 on second ends 306, if desired. In yet another embodiment, as shown in FIG. 4B, the heat treatment can be accomplished by scanning surfaces 308 and/or 310 with a high powered laser 404 using a wavelength that can be absorbed by the optically transparent member segment material to heat the material and form lens elements 904 and/or 906. In other embodiments, the energy source which provides heating can be an electrical spark/arc or a glow discharge placed near the ends of optically transparent member segments. FIG. 3B is a side view of single optically transparent member segment 302 in accordance with an embodiment of the present invention. In this embodiment, first end 304 of optically transparent member segment 302 can be modified by the heating process to have different radii of curvature in two mutually perpendicular or other different directions. The particular illustration in FIG. 3B shows a curved surface 308 on first end 304, such as an oval, semi-oval, piano/convex asphere and the like shaped lens surface, which can provide different optical performance in different optical axes relative to the major axis of the lens surface. In one embodiment, second end 306 can also be modified to either be made flat or to have different radii of curvature in two mutually perpendicular or other different directions. FIG. 3B shows a curved surface 310 on second end 306, such as an oval or semi-oval shaped lens surface, which can provide different optical performance in different optical axes relative to the major axis of the lens surface. The pitch and size of the microlens array can also be adjusted based on the requirements of the particular application. Manufacturing specifications and tolerances for microlens arrays are governed by the specific application and defined by the end user accordingly. In one example, using the method of the present invention a microlens array can be made with focal length uniformity of less than 5% across the entire array, using standard single mode fiber having a diameter of about 125 μm. FIG. 5 illustrates an example of an application for microlens arrays made using the method of the present invention. The example includes a projection system 500 which can include multiple microlens arrays of variable sizes and shapes designed for a specific application. In one embodiment, light enters projection system 500 at a first end 502 having a first microlens array 504 with a first shape 506, for example, a round shape. The light exits projection system 500 at a second end 508 through a second microlens array 510 with a second shape 512, for example, a rectangle. As should be understood from this example the shapes and sizes of the microlens arrays can be made as desired for any application in accordance with the method of the present invention. If necessary or desired, lens elements 406 in microlens array 400 can be coated (si 10). In one embodiment, for a display screen application, microlens array 400 can be coated with anti-reflection and/or anti-glare coatings. The coatings applied to microlens array 400 can be applied by well known techniques, such as sputtering, deposition, evaporation, spraying, dipping, spinning, rolling and the like. As previously mentioned thickness t for the microlens array can vary as can the size and shape of the lens surfaces and the number of lens sides depending on the application. FIG. 6A is a simplified illustration which shows an embodiment of a microlens array 602 having lenses formed on both sides. The thickness t of microlens array 602 can be made small, for example, between about 100 μm and about 1 millimeter. FIG. 6B is a simplified illustration which shows an embodiment of a microlens array 604 having lenses formed on both sides; however, the thickness t is considered large, for example, greater than 1 millimeter. It should be understood from these embodiments, that the thickness t can be made as desired. FIG. 6C is a simplified illustration which shows an embodiment of a microlens array 606 having lenses formed on one side only in accordance with an embodiment of the present invention. The principle embodiment of the present invention described above is described for use with optically transparent members of a cylindrical shape arranged in a bundle. However, it should be understood by those of ordinary skill in the art that the principles of the present invention can apply to other similar shaped materials. Embodiments described above illustrate but do not limit the invention. It should also be understood that numerous modifications and variations are possible in accordance with the principles of the present invention. Accordingly, the scope of the invention is defined only by the following claims.

Claims

WHAT IS CLAIMED IS:
1. A method for manufacturing a microlens array comprising: providing a bundle of optically transparent members; cutting the bundle of optically transparent members to form at least one sheet of optically transparent member segments; and heating the at least one sheet of optically transparent member segments to form lens segments.
2. The method of Claim 1 , further comprising modifying at least one end of the at least one sheet of optically transparent member segments.
3. The method of Claim 2, wherein said modifying comprises modifying both ends of said optically transparent member segments.
4. The method of Claim 1, wherein said providing comprises adhering said optically transparent members together using an adhesive to form a honeycomb-like structure.
5. The method of Claim 1 , wherein said optically transparent members comprise a material taken from the group consisting of glass, polymer and plastic.
6. The method of Claim 1, wherein said heating comprises heating an end of each optically transparent member segment to form a lens surface thereon.
7. The method of Claim 6, wherein said lens surface comprises a convex, concave or planer lens surface.
8. The method of Claim 1, wherein said heating comprises heating both ends of each optically transparent member segment to form a lens surface thereon.
9. The method of Claim 1, wherein said at least one sheet comprises a thickness of between about 100 μm and 1 mm.
10. The method of Claim 1, wherein said at least one sheet comprises a thickness of greater than 1 mm.
11. The method of Claim 1 , wherein said heating comprises placing said at least one sheet of optically transparent member segments into a furnace to expose ends of said optically transparent member segments to a heat source.
12. The method of Claim 1, wherein said heating comprises exposing said at least one sheet of optically transparent member segments to an energy source.
13. A method for manufacturing a microlens array comprising: providing optically transparent cylindrical rods bundled together to form a structure having a cross section that resembles a honeycomb-like structure; cutting the bundle of optically transparent cylindrical rods to form at least one sheet of optically transparent rod segments, each optically transparent rod segment having a first end and a second end; and heating at least one of said ends to form a lens surface on said ends.
14. The method of Claim 13, wherein said providing comprises adhering said optically transparent cylindrical rods together using a UN curable adhesive to form said bundle.
15. The method of Claim 13 , wherein said optically transparent cylindrical rods comprise a material taken from the group consisting of glass, polymer and plastic.
16. The method of Claim 13 , further comprising modifying the shape of at least one end of each optically transparent rod segment.
17. The method of Claim 13, wherein said lens surface comprises a convex, concave or planer lens surface.
18. The method of Claim 13 , wherein said at least one sheet of optically transparent member segments comprises a thickness of between about 100 μm and about 1 mm.
19. The method of Claim 13 , wherein said heating comprises placing said at least one sheet of optically transparent rod segments into a furnace to expose ends of said optically transparent rod segments to an energy source.
20. The method of Claim 13, wherein said heating comprises exposing ends of said optically transparent rod segments to a light source.
EP04814003A 2004-01-08 2004-12-10 Method for making micro-lens array Withdrawn EP1709479A4 (en)

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PCT/US2004/041764 WO2005069782A2 (en) 2004-01-08 2004-12-10 Method for making micro-lens array

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Families Citing this family (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE10344010A1 (en) * 2003-09-15 2005-04-07 Carl Zeiss Smt Ag Honeycomb condenser and lighting system with it
CN101490597B (en) * 2006-07-13 2013-09-04 Limo专利管理有限及两合公司 Apparatus for homogenizing light and laser apparatus for producing a linear intensity distribution in a work plane
WO2008006460A1 (en) 2006-07-13 2008-01-17 Limo Patentverwaltung Gmbh & Co. Kg. Apparatus for homogenizing light and laser apparatus for producing a linear intensity distribution in a work plane
KR100791842B1 (en) * 2006-07-25 2008-01-07 삼성전자주식회사 Image sensor having no shift of microlens and method thereof
CN101344600B (en) * 2007-07-13 2011-01-26 鸿富锦精密工业(深圳)有限公司 Production method of plated film lens
US7879249B2 (en) * 2007-08-03 2011-02-01 Aptina Imaging Corporation Methods of forming a lens master plate for wafer level lens replication
US7919230B2 (en) * 2008-06-25 2011-04-05 Aptina Imaging Corporation Thermal embossing of resist reflowed lenses to make aspheric lens master wafer
CN101956950B (en) * 2009-07-15 2012-09-05 颖台科技股份有限公司 Optical thin plate and manufacture method thereof as well as backlight module
KR101250380B1 (en) * 2010-10-15 2013-04-05 엘지이노텍 주식회사 Illuminating member for reducing unified glare rating comprising air gap and the manufacturing method of the same
CN102096152A (en) * 2010-12-23 2011-06-15 大连艾科科技开发有限公司 Method for making optical fiber spherical-surface micro lens in three steps of corrosion, cutting and hot melting
WO2012149798A1 (en) * 2011-10-09 2012-11-08 华为技术有限公司 Apparatus and method for laying pigtails
CN103975256B (en) * 2011-12-01 2017-11-14 南洋理工大学 Microlens array and preparation method thereof
WO2013153655A1 (en) * 2012-04-12 2013-10-17 パイオニア株式会社 Optical element, head-up display and light source unit
US9546771B2 (en) 2013-08-26 2017-01-17 GE Lighting Solutions, LLC Packed pillow optic array
JP2015169761A (en) * 2014-03-06 2015-09-28 ソニー株式会社 Optical connector and cable and optical communication device
JP7114805B2 (en) 2018-06-22 2022-08-08 インコム,インコーポレイテッド Formation of polymer optical devices by template-constrained relaxation expansion
KR102240406B1 (en) * 2019-06-17 2021-04-15 한국기계연구원 Micro lens array sheet, mold for fabricating the same, and method of fabricating the same
CN113703182B (en) * 2020-05-22 2023-06-20 北京芯海视界三维科技有限公司 Manufacturing method of lens grating
CN112373008B (en) * 2020-10-19 2022-03-01 青岛理工大学 Manufacturing method of embedded self-defogging and zooming micro-lens array, product and application thereof
KR20230033458A (en) * 2021-09-01 2023-03-08 삼성전기주식회사 Nano wire bundle and manufacturing method for the same
CN117103684B (en) * 2023-09-27 2024-05-03 爱司凯科技股份有限公司 Scanning system for reducing inertia of vibrating mirror with long working distance

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3961931A (en) * 1973-09-10 1976-06-08 Hoya Glass Works, Ltd. Apparatus for heat-bonding optical fibers
EP0627641A1 (en) * 1993-05-14 1994-12-07 The Furukawa Electric Co., Ltd. Optical fiber array and a method of producing the same
US5595669A (en) * 1993-08-18 1997-01-21 Alcatel N.V. Method of forming coupling diopters at the ends of optical fibers
US5996376A (en) * 1997-04-11 1999-12-07 Digital Optics Corporation Methods of forming optical rods including three-dimensional patterns on end faces thereof

Family Cites Families (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3216807A (en) * 1960-11-03 1965-11-09 American Optical Corp Method for making fiber optical devices
NL6612387A (en) * 1966-09-02 1968-03-04
US3912362A (en) * 1973-12-26 1975-10-14 Corning Glass Works Termination for fiber optic bundle
US4541727A (en) * 1975-12-16 1985-09-17 Rosenthal Bruce A Lenticular optical system
US5067792A (en) * 1990-09-18 1991-11-26 Lloyd O H Perry Method and apparatus for interfacing of holographic and electronic data
JPH05224098A (en) * 1992-01-06 1993-09-03 Nec Corp Optical coupling circuit and manufacture thereof
US5459803A (en) * 1993-02-18 1995-10-17 The Furukawa Electric Co., Ltd. Quartz-based optical fiber with a lens and its manufacturing method
JPH06324234A (en) * 1993-05-14 1994-11-25 Furukawa Electric Co Ltd:The Production of optical fiber array
JPH11123771A (en) * 1997-10-22 1999-05-11 Micro Opt:Kk Stamper for manufacture of plate microlens array and manufacture of plate microlens array
JP2000131506A (en) * 1998-10-26 2000-05-12 Toshiba Corp Microlens array sheet
US20030029040A1 (en) * 1999-03-08 2003-02-13 Cesaroni Anthony Joseph Laser bonding of heat exchanger tubes
US6582988B1 (en) * 1999-09-30 2003-06-24 Taiwan Semiconductor Manufacturing Company Method for forming micro lens structures
JP2002311260A (en) * 2001-04-12 2002-10-23 Canon Inc Plastic optical fiber, production method therefor, optical package using the same and optical wiring device
US6584259B2 (en) * 2001-04-30 2003-06-24 Schott Glas Use of sol-gel as an inorganic adhesive for high stability, self organizing, fiber optic array
US6654174B1 (en) * 2002-05-08 2003-11-25 Pin Chien Huang Micro lens systems and articles thereof

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3961931A (en) * 1973-09-10 1976-06-08 Hoya Glass Works, Ltd. Apparatus for heat-bonding optical fibers
EP0627641A1 (en) * 1993-05-14 1994-12-07 The Furukawa Electric Co., Ltd. Optical fiber array and a method of producing the same
US5595669A (en) * 1993-08-18 1997-01-21 Alcatel N.V. Method of forming coupling diopters at the ends of optical fibers
US5996376A (en) * 1997-04-11 1999-12-07 Digital Optics Corporation Methods of forming optical rods including three-dimensional patterns on end faces thereof

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